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Estimador de Emparejamiento de Efectos Heterogéneos del Tratamiento×Estimación Doblemente Robusta (AIPW)×
CampoInferencia causalInferencia causal
FamiliaRegression modelRegression model
Año de origen1997-20062005
Autor originalHeckman, Ichimura & Todd; Abadie & ImbensRobins & Rotnitzky; Bang & Robins
TipoCausal inference / nonparametric matchingSemiparametric causal estimator
Fuente seminalHeckman, J. J., Ichimura, H., & Todd, P. E. (1997). Matching as an Econometric Evaluation Estimator: Evidence from Evaluating a Job Training Programme. Review of Economic Studies, 64(4), 605-654. DOI ↗Robins, J. M. & Rotnitzky, A. (1995). Semiparametric Efficiency in Multivariate Regression Models with Missing Data. Journal of the American Statistical Association, 90(429), 122-129. DOI ↗
AliasHTE matching, subgroup matching estimator, conditional matching estimator, CATE matchingAIPW, augmented inverse probability weighting, doubly robust estimator, Çift Gürbüz Kestirici (Augmented IPW / AIPW)
Relacionados65
ResumenThe Heterogeneous Treatment Effect (HTE) Matching Estimator extends standard matching to recover how treatment impacts differ across subgroups or covariate values. Rather than reporting a single average treatment effect, it pairs treated and control units on observed characteristics and then estimates the conditional average treatment effect (CATE) as a function of those characteristics — revealing who benefits most, least, or not at all.Doubly Robust Estimation, also called Augmented Inverse Probability Weighting (AIPW), is a semiparametric method for estimating causal treatment effects that combines an outcome regression model with a propensity (treatment) model. Developed in the work of Robins & Rotnitzky (1995) and Bang & Robins (2005), it stays consistent as long as at least one of the two models is correctly specified.
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ScholarGateComparar métodos: Heterogeneous Treatment Effect Matching Estimator · Doubly Robust Estimation. Recuperado el 2026-06-19 de https://scholargate.app/es/compare